CN210476152U - Pump body machine tool - Google Patents
Pump body machine tool Download PDFInfo
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- CN210476152U CN210476152U CN201921228390.2U CN201921228390U CN210476152U CN 210476152 U CN210476152 U CN 210476152U CN 201921228390 U CN201921228390 U CN 201921228390U CN 210476152 U CN210476152 U CN 210476152U
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- 230000007246 mechanism Effects 0.000 claims abstract description 91
- 238000003754 machining Methods 0.000 claims description 48
- 238000005553 drilling Methods 0.000 claims description 23
- 238000003801 milling Methods 0.000 claims description 10
- 238000010079 rubber tapping Methods 0.000 claims description 8
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 claims description 8
- 230000033001 locomotion Effects 0.000 claims description 6
- 230000000149 penetrating effect Effects 0.000 claims description 5
- 239000012530 fluid Substances 0.000 description 6
- 238000000034 method Methods 0.000 description 4
- 230000008569 process Effects 0.000 description 4
- 230000008901 benefit Effects 0.000 description 1
- 230000008859 change Effects 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 230000001788 irregular Effects 0.000 description 1
- WABPQHHGFIMREM-UHFFFAOYSA-N lead(0) Chemical compound [Pb] WABPQHHGFIMREM-UHFFFAOYSA-N 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
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Abstract
The utility model discloses a pump body processing machine tool, which comprises a base, a rotary table arranged on the base and capable of sliding back and forth along the feeding direction, a chuck arranged on the rotary table, a first processing mechanism arranged on the base and respectively positioned at the two sides of the sliding path of the rotary table and used for processing the end surface of an outlet flange to form a water-grained surface, a second processing mechanism arranged on the base and used for processing the end surface of a ground foot and a second mounting hole, a third processing mechanism arranged on the base and positioned above the sliding path and used for processing a threaded hole, and a fourth processing mechanism arranged on the base and positioned at the tail end of the sliding path and used for processing the first mounting hole; the turntable sequentially passes through the first processing mechanism, the third processing mechanism and the fourth processing mechanism along the sliding path. The utility model relates to a pump body processing machine tool, four processing mechanisms are used for processing the pump body in turn, the number of processing mechanisms is relatively small, the processing efficiency is high, and the stability is good; the workpiece stroke is short, and the equipment volume and the equipment cost are relatively low.
Description
Technical Field
The utility model relates to a pump body machine tool.
Background
In the fluid pump machining, since there are generally three surfaces to be machined, and the shape of the fluid pump itself is irregular, each surface is generally machined by a plurality of machining devices. When a plurality of processingequipment processed the fluid pump respectively, change processingequipment at every turn and all need go up unloading again, machining efficiency is lower.
In view of this situation, there is also a machine tool in the prior art for simultaneously machining three faces of a fluid pump, but this machine tool has the following drawbacks: the device can not adapt to the processing of fluid pumps with different specifications; three surfaces are processed simultaneously, and the instability of the equipment is high.
The end face of the outlet flange of the pump body is machined to form a water wave surface, generally, the water wave surface needs to be machined twice, the machining time is increased and the machining efficiency is reduced through the two machining processes, and the workpiece stroke, the equipment volume and the equipment cost can be increased through one machining mechanism.
Disclosure of Invention
The utility model aims at providing a pump body machine tool, the water wave face can one shot forming, and machining efficiency is higher, and stability is better, the effectual work piece stroke and the equipment volume that has reduced.
In order to achieve the above purpose, the utility model adopts the technical scheme that:
the utility model provides a pump body machine tool, the pump body includes the body, communicates outlet flange on the body, set up in first mounting hole on the outlet flange, locate lower margin on the body, set up in second mounting hole on the lower margin, locate the body top is annular machined surface, set up in screw hole on the machined surface, the lathe includes the base, can follow the direction of pay-off and make a round trip gliding locating on the base and can wind self axial lead direction pivoted carousel, locate be used for the centre gripping on the carousel the chuck of the pump body, locate being located respectively on the base be used for processing of slide path both sides of carousel the terminal surface of outlet flange is in order to form the first processing agency of water line face and be used for processing the terminal surface of lower margin and be used for processing out the second processing agency of second mounting hole, locate being located on the base be used for processing out of slide path top the third processing agency of screw hole, The fourth machining mechanism is arranged on the base and positioned at the tail end of the sliding path and used for machining the first mounting hole;
the turntable has a first machining position, a second machining position and a third machining position on the sliding path: when the turntable is located at the first machining position, the first machining mechanism and the second machining mechanism are used for machining the pump body in sequence; when the turntable is located at the second machining position, the third machining mechanism is used for machining the pump body; and when the turntable is positioned at the third processing position, the fourth processing mechanism is used for processing the pump body.
Preferably, the first processing mechanism includes a first connecting seat capable of moving in three axes and arranged on the base, a base arranged on the first connecting seat, a rotating shaft capable of rotating around the axis direction of the rotating shaft, the rotating shaft penetrates through the base, one end of the rotating shaft penetrates through the base, a driving mechanism arranged on the base and used for driving the rotating shaft to rotate, a mounting plate connected to one end of the rotating shaft, which penetrates through the base, a cutter mounting seat arranged on the mounting plate in a sliding manner, a cyclone milling cutter arranged on the cutter mounting seat, and a servo motor arranged on the mounting plate and used for driving the cutter mounting seat to move;
the rotating shaft is provided with a through hole along the axial direction, the first processing mechanism further comprises a tubular shaft which is arranged in the through hole in a penetrating manner and one end of the tubular shaft is fixedly connected to the base, and an anti-rotating cylinder which is connected to the other end of the tubular shaft and is positioned in the through hole, and the anti-rotating cylinder is positioned between the tubular shaft and the mounting plate; the anti-rotation cylinder and the pipe shaft are sequentially penetrated by the wires on the mounting plate, and the anti-rotation cylinder is used for preventing the wires from moving in the pipe shaft.
More preferably, the driving mechanism includes a synchronizing wheel which is capable of rotating around the axis direction of the driving mechanism and is arranged on the base and coaxially connected to the other end of the rotating shaft, and a first driving motor for driving the synchronizing wheel to rotate.
More preferably, the mounting plate comprises a plate body and a linear rail arranged on the plate body, and the cutter mounting seat can be arranged on the linear rail in a back-and-forth sliding mode along the length extending direction of the linear rail.
Still further preferably, the length extension direction of the wire track is perpendicular to the axial direction of the rotating shaft.
Still further preferably, the servo motor comprises a screw rod which is arranged on the mounting plate and is parallel to the wire rail and can rotate around the axis direction of the screw rod, and a nut connecting seat arranged on the screw rod, and the cutter mounting seat is connected to the nut connecting seat.
Preferably, but the second processing agency includes but the locating of triaxial motion second connecting seat on the base, can be around self axial lead direction pivoted locating disc milling cutter on the second connecting seat, locate be used for the drive on the second connecting seat disc milling cutter's second driving motor, can be around self axial lead direction pivoted locating first drilling chamfer sword on the second connecting seat, locate be used for the drive on the second connecting seat the third driving motor of first drilling chamfer sword.
Preferably, the third processing mechanism includes a third connecting seat disposed on the base and located above the sliding path, a second drilling chamfer cutter rotatably disposed on the third connecting seat in the direction of the axis of the third connecting seat, a fourth driving motor disposed on the third connecting seat and used for driving the second drilling chamfer cutter, a first sliding seat slidably disposed on the third connecting seat in the direction perpendicular to the sliding path and connected to the fourth driving motor, a first tapping cutter rotatably disposed on the third connecting seat in the direction of the axis of the third connecting seat, a fifth driving motor disposed on the third connecting seat and used for driving the first tapping cutter, and a second sliding seat slidably disposed on the third connecting seat in the direction perpendicular to the sliding path and connected to the fifth driving motor.
Preferably, the fourth processing mechanism comprises a fourth connecting seat capable of moving in three axes and arranged on the base, a third drilling chamfer cutter capable of rotating around the axis line direction of the fourth connecting seat and arranged on the fourth connecting seat, and a sixth driving motor arranged on the fourth connecting seat and used for driving the third drilling chamfer cutter.
Preferably, the arrangement direction of the first processing mechanism and the second processing mechanism is perpendicular to the sliding path, and the sliding path sequentially passes through the first processing mechanism, the third processing mechanism and the fourth processing mechanism along the feeding direction.
Because of above-mentioned technical scheme's application, compared with the prior art, the utility model have the following advantage: the utility model relates to a pump body processing machine tool, a turntable is only provided with three processing positions on a sliding path, and four processing mechanisms are used for processing a pump body in sequence; the number of processing mechanisms is relatively small, the processing efficiency is high, and the stability is good; correspondingly, the stroke of the workpiece to be processed is short, and the equipment volume and the equipment cost are relatively low.
Drawings
FIG. 1 is a schematic structural diagram of the device of the present invention;
FIG. 2 is a front view of FIG. 1;
FIG. 3 is a top view of FIG. 1;
FIG. 4 is an enlarged schematic view of A of FIG. 1;
FIG. 5 is a cross-sectional view of a first processing mechanism;
fig. 6 is a schematic structural view of the pump body.
Wherein: 1. a pump body; 101. a body; 102. an outlet flange; 103. a first mounting hole; 104. ground feet; 105. a second mounting hole; 106. processing the dough; 107. a threaded hole; 2. a base; 3. a turntable; 4. a chuck; 5. a first connecting seat; 6. a machine base; 7. a rotating shaft; 8. mounting a plate; 9. a tool mounting seat; 10. a through hole; 11. a tubular shaft; 12. anti-rotation cylinder; 13. a wire; 14. a synchronizing wheel; 15. a wire track; 16. a screw rod; 17. a nut connecting seat; 18. a second connecting seat; 19. a disc cutter; 20. a second drive motor; 21. a first drilling chamfer cutter; 22. a third drive motor; 23. a third connecting seat; 24. a second drilling chamfer cutter; 25. a fourth drive motor; 26. a first sliding seat; 27. a first tapping knife; 28. a fifth drive motor; 29. a second sliding seat; 30. a fourth connecting seat; 31. a third drilling chamfer cutter; 32. and a sixth drive motor.
Detailed Description
The technical solution of the present invention will be further explained with reference to the accompanying drawings.
Referring to fig. 6, a pump body 1 of the fluid pump includes a body 101, an outlet flange 102 communicated with the body 101, a first mounting hole 103 opened on the outlet flange 102, a foot 104 opened on the body 101, a second mounting hole 105 opened on the foot 104, a processing surface 106 provided on the top of the body 101 and having an annular shape, and a threaded hole 107 opened on the processing surface 106.
Referring to fig. 1-5, the pump body processing machine tool includes a base 2, a rotary table 3 which is arranged on the base 2 and can slide back and forth along a feeding direction (see fig. 3, from bottom to top) and rotate around a self axis line direction, a chuck 4 which is arranged on the rotary table 3 and is used for clamping the pump body 1, a first processing mechanism and a second processing mechanism which are arranged on the base 2 and are respectively located on two sides of a sliding path of the rotary table 3, a third processing mechanism which is arranged on the base 2 and is located above the sliding path, and a fourth processing mechanism which is arranged on the base 2 and is located at the tail end of the sliding path. In the present embodiment, the arrangement direction of the first processing mechanism and the second processing mechanism is perpendicular to the slide path, i.e., arranged in the left-right direction in fig. 3. The sliding path passes through a first processing mechanism (a second processing mechanism), a third processing mechanism and a fourth processing mechanism in sequence along the feeding direction.
The first machining mechanism is used for machining the end face of the outlet flange 102 to form a water wave surface; the second machining mechanism is used for machining the end face of the anchor 104 and machining a second mounting hole 105; the third machining mechanism is used for machining a threaded hole 107; the fourth machining mechanism is used for machining the first mounting hole 103.
In the present embodiment, the turntable 3 has a first processing position, a second processing position and a third processing position on the sliding path, and the first processing position, the second processing position and the third processing position are arranged in sequence from bottom to top as shown in fig. 3. When the turntable 3 is located at the first processing position, the first processing mechanism and the second processing mechanism are used for processing the pump body 1 in sequence; when the rotary table 3 is located at the second machining position, the third machining mechanism is used for machining the pump body 1; when the rotary table 3 is located at the third processing position, the fourth processing mechanism is used for processing the pump body 1. Because only one processing mechanism is arranged on each of the two sides of the sliding path, the stroke of the pump body 1 along the feeding direction is shortened, and the equipment volume and the equipment cost are relatively low.
The following three-axis motions refer to motions in the left-right, front-back, and up-down directions.
The first processing mechanism comprises a first connecting seat 5 which can move in a three-axis manner and is arranged on the base 2, a base 6 arranged on the first connecting seat 5, a rotating shaft 7 which can rotate around the self axis line direction and penetrates through the base 6, and the right end (see fig. 5, the right end in fig. 5 is the right end) of the rotating shaft penetrates out of the base 6, a driving mechanism which is arranged on the base 6 and is used for driving the rotating shaft 7 to rotate, a mounting plate 8 which is connected to the right end of the rotating shaft 7, a cutter mounting seat 9 which is arranged on the mounting plate 8 in a slidable manner, a cyclone milling cutter arranged on the cutter mounting seat 9, and a servo motor which is arranged on the mounting plate 8 and is used.
The rotating shaft 7 is provided with a through hole 10 along an axial direction thereof, the first processing mechanism further comprises a tubular shaft 11 which is arranged in the through hole 10 in a penetrating manner, the left end of the tubular shaft (see fig. 5, the left end in fig. 5 is the left end) of the tubular shaft 11 is fixedly connected to the machine base 6, and an anti-rotation cylinder 12 which is connected to the right end of the tubular shaft 11 and is arranged in the through hole 10, wherein the anti-rotation cylinder 12 is arranged between the tubular shaft 11 and the mounting plate 8. The anti-rotation cylinder 12 and the pipe shaft 11 are sequentially penetrated by a wire 13 on the mounting plate 8. The anti-rotation cylinder 12 is used to prevent the wire 13 from moving in the tube shaft 11. The left end of the anti-rotation cylinder 12 is fixedly connected to the tubular shaft 11, and the right end of the anti-rotation cylinder 12 is in clearance distribution with the mounting plate 8. The wires 13 include signal lines such as servo motor lines, proximity switches, etc., and since the wires 13 rotate on the mounting plate 8 along with the mounting plate 8, the wires 13 can be held stationary in the pipe shaft 11 by mounting the anti-rotation cylinder 12. In the present embodiment, the lead wire 13 is passed through the middle side portion of the mounting plate 8, passed through the through hole 10 on the right side of the base 6, passed through the anti-rotation cylinder 12 and the pipe shaft 11 in this order, and then passed through the through hole 10 on the left side of the base 6.
The driving mechanism comprises a synchronizing wheel 14 which can rotate around the axis line direction of the driving mechanism and is arranged on the machine base 6 and is coaxially connected with the left end of the rotating shaft 7, and a driving motor for driving the synchronizing wheel 14 to rotate. In this embodiment, the synchronizing wheel 14 is fixedly sleeved on the left end of the rotating shaft 7.
The mounting plate 8 comprises a plate body 101 and a linear rail 15 arranged on the plate body 101, and the cutter mounting seat 9 can be arranged on the linear rail 15 in a reciprocating sliding mode along the length extending direction of the linear rail 15. In the present embodiment, the length extension direction of the linear rail 15 is perpendicular to the axial direction of the rotating shaft 7. Through the arrangement, the cyclone milling cutter can synchronously do reciprocating linear motion while rotating so as to mill a water wave surface on a workpiece.
The servo motor comprises a screw rod 16 which can rotate around the axis direction of the servo motor and is arranged on the mounting plate 8 and is parallel to the linear rail 15, a nut connecting seat 17 arranged on the screw rod 16, and a cutter mounting seat 9 is connected on the nut connecting seat 17. In this embodiment, there are two linear rails 15, the screw rod 16 is disposed between the two linear rails 15, and when the screw rod 16 is driven by the servo motor to rotate, the nut connecting seat 17 is driven to reciprocate along the length extension direction of the screw rod 16, so that the tool mounting seat 9 reciprocates along the length extension direction of the linear rails 15.
The second processing mechanism comprises a second connecting seat 18 which can move in a three-axis manner and is arranged on the base 2, a disc milling cutter 19 which can rotate around the self axis direction and is arranged on the second connecting seat 18, a second driving motor 20 which is arranged on the second connecting seat 18 and is used for driving the disc milling cutter 19, a first drilling chamfer cutter 21 which can rotate around the self axis direction and is arranged on the second connecting seat 18, and a third driving motor 22 which is arranged on the second connecting seat 18 and is used for driving the first drilling chamfer cutter 21.
In the present embodiment, the axial lines of the disc cutter 19 and the first drill chamfer 21 are parallel to each other and each extend in the horizontal direction, and the disc cutter 19 is located directly below the first drill chamfer 21.
The third processing mechanism comprises a third connecting seat 23 arranged on the base 2 and positioned above the sliding path, a second drilling chamfer cutter 24 arranged on the third connecting seat 23 and capable of rotating around the self axial lead direction, a fourth driving motor 25 arranged on the third connecting seat 23 and used for driving the second drilling chamfer cutter 24, a first sliding seat 26 arranged on the third connecting seat 23 and connected with the fourth driving motor 25 and capable of sliding along the vertical sliding path, a first tapping cutter 27 arranged on the third connecting seat 23 and capable of rotating around the self axial lead direction, a fifth driving motor 28 arranged on the third connecting seat 23 and used for driving the first tapping cutter 27, and a second sliding seat 29 arranged on the third connecting seat 23 and connected with the fifth driving motor 28 and capable of sliding along the vertical sliding path. For pump bodies 1 of different specifications, the distance between the first sliding seat 26 and the second sliding seat 29 is adjusted so that the second drilling chamfer cutter 24 and the first tapping cutter 27 are respectively aligned with two threaded holes 107 on the processing surface 106 which are farthest away, namely two threaded holes 107 at two ends in the same diameter direction.
In this embodiment, third connecting seat 23 extends along the left-right direction, a support column is disposed between third connecting seat 23 and base 2, and first sliding seat 26 and second sliding seat 29 are both slidably disposed on third connecting seat 23 along the length extending direction of third connecting seat 23. The axial lines of the second drilling chamfer cutter 24 and the first tapping cutter 27 are parallel to each other and extend in the vertical direction.
The fourth processing mechanism comprises a fourth connecting seat 30 which can move in three axes and is arranged on the base 2, a third drilling chamfer cutter 31 which can rotate around the axis line direction of the fourth connecting seat 30 and is arranged on the fourth connecting seat 30, and a sixth driving motor 32 which is arranged on the fourth connecting seat 30 and is used for driving the third drilling chamfer cutter 31.
In the present embodiment, the axial line of the third drill chamfer 31 extends in the horizontal direction, and is parallel to the sliding path.
The following specifically explains the working process of this embodiment:
firstly, the pump body 1 is installed in the chuck 4, the turntable 3 is moved to a first processing position (between a first processing mechanism and a second processing mechanism), the outlet flange 102 faces the first processing mechanism, and the ground feet 104 face the second processing mechanism; the first processing mechanism processes the end face of the outlet flange 102 to form a water wave surface; after the processing is finished, the second processing mechanism processes the end face of the ground foot 104 and punches a second mounting hole 105;
then, the rotary table 3 is moved to a second machining position (below the third machining mechanism), the third machining mechanism punches a second threaded hole 107 on the machining surface 106, and in the machining process, the rotary table 3 intermittently rotates to punch all the threaded holes 107;
then, after all the threaded holes 107 are punched out, the turntable 3 moves to a third processing position and rotates by a certain angle, so that the outlet flange 102 faces a fourth processing mechanism, and the fourth processing mechanism processes the outlet flange 102 and punches out the first mounting hole 103;
and finally, returning the turntable 3 to the feeding position in the original way, and unloading the processed pump body 1.
The above embodiments are only for illustrating the technical concept and features of the present invention, and the purpose of the embodiments is to enable people skilled in the art to understand the contents of the present invention and to implement the present invention, which cannot limit the protection scope of the present invention. All equivalent changes and modifications made according to the spirit of the present invention should be covered by the protection scope of the present invention.
Claims (10)
1. The utility model provides a pump body machine tool, the pump body includes the body, communicates export flange on the body, set up in first mounting hole on the export flange, locate lower margin on the body, set up in second mounting hole on the lower margin, locate the body top is annular machined surface, sets up in screw hole on the machined surface, its characterized in that: the machine tool comprises a base, a rotary table, a chuck, a first processing mechanism, a second processing mechanism, a third processing mechanism and a fourth processing mechanism, wherein the rotary table can slide back and forth along a feeding direction, is arranged on the base and can rotate around the axial lead direction of the rotary table, the chuck is arranged on the rotary table and is used for clamping the pump body, the first processing mechanism is arranged on the base and is respectively positioned at two sides of a sliding path of the rotary table and is used for processing the end surface of the outlet flange to form a water texture surface, the second processing mechanism is used for processing the end surface of the anchor and is used for processing the second mounting hole, the third processing mechanism is arranged on the base and is positioned above the sliding path and is used for processing the threaded hole, and the fourth processing mechanism is arranged on the base and is;
the turntable has a first machining position, a second machining position and a third machining position on the sliding path: when the turntable is located at the first machining position, the first machining mechanism and the second machining mechanism are used for machining the pump body in sequence; when the turntable is located at the second machining position, the third machining mechanism is used for machining the pump body; and when the turntable is positioned at the third processing position, the fourth processing mechanism is used for processing the pump body.
2. A pump body processing machine according to claim 1, wherein: the first processing mechanism comprises a first connecting seat which can move in a three-axis manner and is arranged on the base, a base arranged on the first connecting seat, a rotating shaft which can rotate around the axis line direction of the first processing mechanism, is arranged in the base in a penetrating manner, and one end of the rotating shaft penetrates out of the base, a driving mechanism which is arranged on the base and is used for driving the rotating shaft to rotate, a mounting plate which is connected with one end of the rotating shaft penetrating out of the base, a cutter mounting seat which is arranged on the mounting plate in a sliding manner, a cyclone milling cutter arranged on the cutter mounting seat, and a servo motor which is arranged on the mounting plate and is used for driving the;
the rotating shaft is provided with a through hole along the axial direction, the first processing mechanism further comprises a tubular shaft which is arranged in the through hole in a penetrating manner and one end of the tubular shaft is fixedly connected to the base, and an anti-rotating cylinder which is connected to the other end of the tubular shaft and is positioned in the through hole, and the anti-rotating cylinder is positioned between the tubular shaft and the mounting plate; the anti-rotation cylinder and the pipe shaft are sequentially penetrated by the wires on the mounting plate, and the anti-rotation cylinder is used for preventing the wires from moving in the pipe shaft.
3. A pump body processing machine according to claim 2, wherein: the driving mechanism comprises a synchronizing wheel which can rotate around the axis direction of the driving mechanism and is arranged on the base and coaxially connected to the other end of the rotating shaft, and a first driving motor which is used for driving the synchronizing wheel to rotate.
4. A pump body processing machine according to claim 2, wherein: the mounting plate comprises a plate body and a linear rail arranged on the plate body, and the cutter mounting seat can be arranged on the linear rail in a back-and-forth sliding mode along the length extending direction of the linear rail.
5. A pump body processing machine according to claim 4, characterized in that: the length extension direction of the linear rail is perpendicular to the axial direction of the rotating shaft.
6. A pump body processing machine according to claim 4, characterized in that: the servo motor comprises a screw rod which can rotate around the axis direction of the servo motor and is arranged on the mounting plate and is parallel to the linear rail, and a nut connecting seat arranged on the screw rod, wherein the cutter mounting seat is connected on the nut connecting seat.
7. A pump body processing machine according to claim 1, wherein: but second processing agency includes but the locating of triaxial motion second connecting seat on the base, can be around self axial lead direction pivoted locating disc milling cutter on the second connecting seat, locate be used for the drive on the second connecting seat disc milling cutter's second driving motor, can be around self axial lead direction pivoted locating first drilling chamfer sword on the second connecting seat, locate be used for the drive on the second connecting seat the third driving motor of first drilling chamfer sword.
8. A pump body processing machine according to claim 1, wherein: the third processing mechanism comprises a third connecting seat arranged on the base and above the sliding path, a second drilling chamfer cutter arranged on the third connecting seat in a rotating mode in the direction of the self axial lead, a fourth driving motor arranged on the third connecting seat and used for driving the second drilling chamfer cutter, a fifth driving motor arranged on the third connecting seat and used for driving the first tapping cutter, and a second sliding seat connected with the fifth driving motor.
9. A pump body processing machine according to claim 1, wherein: but fourth processing agency includes but the three-axis motion locate fourth connecting seat on the base, can wind self axial lead direction pivoted locate third drilling chamfer sword on the fourth connecting seat, locate be used for the drive on the fourth connecting seat the sixth driving motor of third drilling chamfer sword.
10. A pump body processing machine according to claim 1, wherein: the arrangement direction of the first processing mechanism and the second processing mechanism is perpendicular to the sliding path, and the sliding path sequentially passes through the first processing mechanism, the third processing mechanism and the fourth processing mechanism along the feeding direction.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201921228390.2U CN210476152U (en) | 2019-07-31 | 2019-07-31 | Pump body machine tool |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201921228390.2U CN210476152U (en) | 2019-07-31 | 2019-07-31 | Pump body machine tool |
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| Publication Number | Publication Date |
|---|---|
| CN210476152U true CN210476152U (en) | 2020-05-08 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
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| CN201921228390.2U Active CN210476152U (en) | 2019-07-31 | 2019-07-31 | Pump body machine tool |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN111774671A (en) * | 2020-07-13 | 2020-10-16 | 安徽奔腾五金制造有限公司 | Multi-station full-automatic tapping machine for refrigerator bottom plate and working method of multi-station full-automatic tapping machine |
-
2019
- 2019-07-31 CN CN201921228390.2U patent/CN210476152U/en active Active
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN111774671A (en) * | 2020-07-13 | 2020-10-16 | 安徽奔腾五金制造有限公司 | Multi-station full-automatic tapping machine for refrigerator bottom plate and working method of multi-station full-automatic tapping machine |
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